A planetary gear device includes: a sun gear; a plurality of planet gears that mesh with the sun gear; and a baffle unit disposed in a circumferential gap between the adjacent planet gears. The baffle unit includes: a first introduction opening portion open in a radially inward direction to introduce lubricating oil, which has lubricated the sun gear and the planet gears, into the baffle unit; an end wall forming one end in an axial direction of the first introduction opening portion; a discharge opening portion to discharge lubricating oil in the baffle unit; and a guide portion disposed at a side portion of the baffle unit on a rear side in rotation direction of the sun gear, and configured to cover the first introduction opening portion in the circumferential direction and to guide the lubricating oil to an outer circumference of the adjacent planet gears.
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1. A planetary gear device comprising:
a sun gear having external teeth;
a plurality of planet gears that have external teeth and mesh with the sun gear;
a ring gear that has internal teeth and meshes with the planet gears; and
a baffle unit disposed in a circumferential gap defined between the planet gears adjacent to each other,
the baffle unit including:
a first introduction opening portion that is open in a radially inward direction, and configured to introduce lubricating oil into the baffle unit after the lubricating oil has lubricated tooth surfaces of the sun gear and tooth surfaces of the planet gears;
a radially outer end wall that is disposed in a vicinity of a radially inner side of the ring gear;
an end wall disposed at one end portion of the radially outer end wall and forming one end, in an axial direction, of the first introduction opening portion;
a discharge opening portion to discharge the lubricating oil in the baffle unit; and
a guide portion disposed at least at a side portion of the baffle unit on a rear side in a rotation direction of the sun gear, and configured to cover the first introduction opening portion in the circumferential direction, and to guide the lubricating oil into the first introduction opening portion,
wherein a circumferential width of the first introduction opening portion is configured to be greater than a minimum gap between two planet gears adjacent to each other.
11. A planetary gear device comprising:
a sun gear having external teeth;
a plurality of planet gears that have external teeth and mesh with the sun gear;
a ring gear that has internal teeth and meshes with the planet gears; and
a baffle unit disposed in a circumferential gap defined between the planet gears adjacent to each other,
the baffle unit including:
a first introduction opening portion that is open in a radially inward direction, and configured to introduce lubricating oil into the baffle unit after the lubricating oil has lubricated tooth surfaces of the sun gear and tooth surfaces of the planet gears;
a radially outer end wall that is disposed in a vicinity of a radially inner side of the ring gear;
an end wall disposed at one end portion of the radially outer end wall and forming one end, in an axial direction, of the first introduction opening portion;
a discharge opening portion to discharge the lubricating oil in the baffle unit; and
a guide portion disposed at least at a side portion of the baffle unit on a rear side in a rotation direction of the sun gear, and configured to cover the first introduction opening portion in the circumferential direction, and to guide the lubricating oil into the first introduction opening portion,
wherein the end wall of the baffle unit is formed with a support portion configured to support a rotary shaft that is disposed so as to be concentric with the sun gear and rotates integrally with the ring gear.
13. A planetary gear device comprising:
a sun gear having external teeth;
a plurality of planet gears that have external teeth and mesh with the sun gear;
a ring gear that has internal teeth and meshes with the planet gears;
a baffle unit disposed in a circumferential gap defined between the planet gears adjacent to each other,
the baffle unit including:
a first introduction opening portion that is open in a radially inward direction, and configured to introduce lubricating oil into the baffle unit after the lubricating oil has lubricated tooth surfaces of the sun gear and tooth surfaces of the planet gears;
a radially outer end wall that is disposed in a vicinity of a radially inner side of the ring gear;
an end wall disposed at one end portion of the radially outer end wall and forming one end, in an axial direction, of the first introduction opening portion;
a discharge opening portion to discharge the lubricating oil in the baffle unit; and
a guide portion disposed at least at a side portion of the baffle unit on a rear side in a rotation direction of the sun gear, and configured to cover the first introduction opening portion in the circumferential direction, and to guide the lubricating oil into the first introduction opening portion;
a housing that accommodates the sun gear, the planet gears, and the ring gear,
wherein the housing includes: a nozzle configured to inject the lubricating oil toward the tooth surfaces of the sun gear; and a supply passage to supply the lubricating oil is supplied to a bearing of the planet gear.
10. A planetary gear device comprising:
a sun gear having external teeth;
a plurality of planet gears that have external teeth and mesh with the sun gear;
a ring gear that has internal teeth and meshes with the planet gears; and
a baffle unit disposed in a circumferential gap defined between the planet gears adjacent to each other,
the baffle unit including:
a first introduction opening portion that is open in a radially inward direction, and configured to introduce lubricating oil into the baffle unit after the lubricating oil has lubricated tooth surfaces of the sun gear and tooth surfaces of the planet gears;
a radially outer end wall that is disposed in a vicinity of a radially inner side of the ring gear;
an end wall disposed at one end portion of the radially outer end wall and forming one end, in an axial direction, of the first introduction opening portion;
a discharge opening portion to discharge the lubricating oil in the baffle unit;
a guide portion disposed at least at a side portion of the baffle unit on a rear side in a rotation direction of the sun gear, and configured to cover the first introduction opening portion in the circumferential direction, and to guide the lubricating oil into the first introduction opening portion; and
a distributor member disposed on a front side in the rotation direction of the sun gear and configured to guide the lubricating oil along an outer circumference of the planet gear that is adjacent thereto,
wherein the baffle unit has a second introduction opening portion formed between the distributor member and the radially outer end wall so as to be located on a radially inner side of the radially outer end wall, and at a side portion on the front side in the rotation direction of the sun gear.
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This application is a continuation application, under 35 U.S.C. §111(a), of international application No. PCT/JP2014/076062, filed Sep. 30, 2014, which claims priority to Japanese patent application No. 2013-206144, filed Oct. 1, 2013, the disclosure of which are incorporated by reference in their entirety into this application.
Field of the Invention
The present invention relates to planetary gear devices that are used for power transmission mechanisms for general industrial machinery, aircrafts, and the like, and that include a structure for distributing lubricating oil flow.
Description of Related Art
In recent years, one of the key issues in general machinery is to reduce fuel consumption from the viewpoint of reduction in operation cost and environmental conservation. Therefore, also for planetary gear devices for use in aircraft engines, reduction in power loss is required.
Conventionally, this type of planetary gear device includes a mechanism for supplying lubricating oil to gears in order to lubricate and cool the gears. However, one of main causes of power loss in the planetary gear device is stirring resistance of supplied lubricating oil. The stirring resistance of lubricating oil is proportional to the third power of a circumferential speed of a gear. Therefore, the stirring resistance becomes too high to be ignored in gears having high circumferential speeds. One example of a technique for reducing such stirring resistance of lubricating oil is disclosed in Patent Document 1. According to Patent Document 1, baffle units are provided in circumferential gaps formed between a plurality of planet gears to introduce, into the baffle units, excess lubricating oil that is generated around the adjacent planet gears after lubrication, and discharge the excess lubricating oil to the outside of the gear device. Thus, the stirring resistance of the lubricating oil is reduced, whereby power loss is reduced.
[Patent Document 1] JP Patent No. 4948620
However, in the planetary gear device disclosed in Patent Document 1, excess lubricating oil is left adhered between adjacent planet gears after lubricating a sun gear or the planet gears, and cannot be sufficiently removed from tooth surfaces of the gears. Therefore, a technique for effectively removing the lubricating oil from the tooth surfaces to sufficiently reduce stirring resistance of the lubricating oil is required.
An object of the present invention is to provide a planetary gear device that allows lubricating oil to be efficiently removed from a train of gears and allows reduction of stirring resistance of the lubricating oil such that power loss is reduced so as to be low.
In order to attain the aforementioned object, a planetary gear device having a structure for distributing lubricating oil flow according to the present invention includes: a sun gear having external teeth; a plurality of planet gears that have external teeth and mesh with the sun gear; a ring gear that has internal teeth and meshes with the planet gears; and a baffle unit disposed in a circumferential gap defined between the planet gears adjacent to each other. The baffle unit includes: a first introduction opening portion that is open in a radially inward direction, and configured to introduce lubricating oil, which has lubricated tooth surfaces of the sun gear and the planet gears, into the baffle unit; a radially outer end wall that is disposed in the vicinity of a radially inner side of the ring gear; and an end wall disposed at one end portion of the radially outer end wall and forming one end, in an axial direction, of the first introduction opening portion. The baffle unit further includes a discharge opening portion to discharge the lubricating oil in the baffle unit; and a guide portion disposed at least at a side portion of the baffle unit on a rear side in a rotation direction of the sun gear, and configured to cover the first introduction opening portion in the circumferential direction, and to guide the lubricating oil into the first introduction opening portion. In the description herein, the “axial direction” refers to an axial direction of the planetary gear device, that is, an axial direction of the sun gear disposed at the center portion of the planetary gear device, and the “radial direction” refers to a direction orthogonal to the axial direction of the sun gear.
In this configuration, excess lubricating oil is introduced, through the first introduction opening portion of the baffle unit disposed between the adjacent planet gears, into the baffle unit after the sun gear and the planet gears are lubricated. The lubricating oil introduced into the baffle unit is smoothly discharged through the discharge opening portion to the outside. Thus, it is possible to reduce stirring resistance caused by the excess lubricating oil being accumulated at the tooth surfaces of the adjacent planet gears and at a portion therearound after a train of gears is lubricated, and flows of the lubricating oil interfering with each other. As a result, power loss can be effectively reduced. The guide portion is provided at least at a side portion on a rear side in a rotation direction of the sun gear so as to cover the first introduction opening portion in the circumferential direction, so that excess lubricating oil can be smoothly introduced into the first introduction opening portion by the guide portion after a portion in which the sun gear and each planet gear mesh with each other is lubricated. Movement of the lubricating oil along the tooth surface of the ring gear after lubrication of a portion in which the planet gear and the ring gear mesh with each other, is prevented by the radially outer end wall disposed in the vicinity of the ring gear. Thus, stirring resistance is further reduced.
In the planetary gear device of the present invention, a housing or a rotary shaft of the sun gear may have a supply opening to supply the lubricating oil to the tooth surface of the sun gear. In this case, a circumferential width of the first introduction opening portion is set so as to be greater than a minimum gap between two planet gears adjacent to each other. In this configuration, a supply opening for the lubricating oil need not be provided in the baffle unit. Therefore, an internal space of the baffle unit can be effectively used for collecting the lubricating oil. The width, in the circumferential direction, of the first introduction opening portion is greater than the minimum gap between the planet gears, whereby the lubricating oil that flows radially outward through between the planet gears can be effectively introduced through the first introduction opening portion into the baffle unit.
For example, the first introduction opening portion may be disposed in the vicinity of an arrangement pitch circle of the planet gears. In the description herein, the “vicinity” is defined as a region having a diameter that is 0.8 to 1.2 times the diameter of the arrangement pitch circle. In the vicinity of the arrangement pitch circle, a distance between the two adjacent planet gears is greater than the minimum gap, and the portion in the vicinity thereof is not distant from the sun gear. Therefore, the lubricating oil can be effectively introduced into the baffle unit through the first introduction opening portion disposed in the vicinity thereof after the sun gear is lubricated.
In the planetary gear device of the present invention, the baffle unit may have a second introduction opening portion formed on a radially inner side of the radially outer end wall, and at a side portion on a front side in a rotation direction of the sun gear. In this configuration, excess lubricating oil adhering to the tooth surfaces of the planet gears can be introduced into the baffle unit also through the second introduction opening portion after the portion in which each planet gear and the ring gear mesh with each other is lubricated, thereby enhancing an effect of collecting the lubricating oil.
In the planetary gear device of the present invention, a distributor member disposed on the front side in the rotation direction of the sun gear and configured to guide the lubricating oil along an outer circumference of the planet gear that is adjacent thereto may be provided, and the second introduction opening portion may be formed between the distributor member and the radially outer end wall. In this configuration, the lubricating oil can be smoothly introduced into the second introduction opening portion by the distributor member and effectively collected into the baffle unit after the portion in which each planet gear and the ring gear mesh with each other is lubricated.
In the planetary gear device of the present invention, the end wall of the baffle unit may be formed with a support portion configured to support a rotary shaft that is disposed so as to be concentric with the sun gear and rotates integrally with the ring gear. In this configuration, the rotary shaft is supported by the support portion formed in the end wall of the baffle unit, so that a bearing for supporting the rotary shaft need not be separately provided, thereby simplifying the structure.
The planetary gear device of the present invention may further include a housing that accommodates the sun gear, the planet gears, and the ring gear, in which the discharge opening portion is formed in the end wall, and the other end portion of the radially outer end wall is provided with an attaching wall connected to the housing. In this configuration, the end wall has the support portion, and thus has an increased dimension in the radial direction. Therefore, the discharge opening portion formed in the end wall can be increased to easily discharge the lubricating oil. The baffle unit is stably supported by the housing at the attaching wall.
The planetary gear device of the present invention may further include a housing that accommodates the sun gear, the planet gears, and the ring gear, and the discharge opening portion may be formed at the other end portion of the radially outer end wall. Thus, the lubricating oil in the baffle unit can be smoothly discharged to the outside.
The planetary gear device of the present invention may further include a housing that accommodates the sun gear, the planet gears, and the ring gear, and the discharge opening portion may be formed in a portion, of the housing, corresponding to an inner side, in the radial direction, of the other end portion of the radially outer end wall of the baffle unit. In this configuration, the housing does not rotate and is stationary, whereby the lubricating oil in the baffle unit can be smoothly discharged through the discharge opening portion formed in the housing to the outside of the baffle unit.
The planetary gear device of the present invention may further include: a ring member having an inner circumferential surface formed with the ring gear; and a housing that accommodates the ring member, the sun gear, the planet gears, and the ring gear, in which the ring member has an outlet hole to guide the lubricating oil discharged through the discharge opening portion of the baffle unit to outside of the ring member. In this configuration, the lubricating oil discharged through the discharge opening portion of the baffle unit, is guided into the housing through the outlet hole of the ring member, whereby the lubricating oil is not accumulated in the ring member. Therefore, stirring resistance of the lubricating oil caused by the rotation of the ring member can be reduced.
The planetary gear device of the present invention may further include a housing that accommodates the sun gear, the planet gears, and the ring gear, and the housing may include: a nozzle configured to inject the lubricating oil toward the tooth surface of the sun gear; and a supply passage to supply the lubricating oil to a bearing of the planet gear. In this configuration, the housing does not rotate and is stationary, so that the lubricating oil can be constantly and stably injected to the tooth surface of the sun gear from the nozzle provided in the housing. Similarly, the lubricating oil can be constantly and stably supplied to the bearing of each planet gear by the supply passage, provided in the housing, for supplying the lubricating oil.
Any combination of at least two constructions, disclosed in the appended claims and/or the specification and/or the accompanying drawings should be construed as included within the scope of the present invention. In particular, any combination of two or more of the appended claims should be equally construed as included within the scope of the present invention.
In any event, the present invention will become more clearly understood from the following description of preferred embodiments thereof, when taken in conjunction with the accompanying drawings. However, the embodiments and the drawings are given only for the purpose of illustration and explanation, and are not to be taken as limiting the scope of the present invention in any way whatsoever, which scope is to be determined by the appended claims. In the accompanying drawings, like reference numerals are used to denote like parts throughout the several views, and:
Hereinafter, a first embodiment of the present invention will be described with reference to
The planetary gear device 1 includes a sun gear 2 disposed at the center portion and having external teeth 2a, a plurality of planet gears 3 disposed on an outer periphery of the sun gear 2, each having external teeth 3a, a ring gear 4 disposed on an outer periphery of a train of the planet gears, having internal teeth 4a, and baffle units 5 each disposed in a circumferential gap defined between the planet gears 3 and 3 adjacent to each other. The sun gear 2 is formed as a spur gear on the outer periphery of an input shaft 6 that is a rotary shaft. The planet gears 3 are formed as spur gears that correspond to the sun gear 2, and mesh with the sun gear 2. In the present embodiment, the three planet gears 3 are equally spaced from each other in the circumferential direction of the sun gear 2. The ring gear 4 is formed as a spur gear and meshes with the three planet gears 3.
As shown in
The input shaft 6 extends from the outside of the housing 9 through a through-hole 40 in the housing 9. A portion of the input shaft 6 outside the through-hole 40 is supported by a slide bearing 16a provided in a first support casing 16 that is a part of the housing 9 such that the input shaft 6 is rotatable relative to the first support casing 16. A base end portion (the left end portion in
The ring gear 4 is formed on an inner circumferential surface of a ring member 19. An output shaft 20 that is a rotary shaft is disposed on an axis C common to the input shaft 6, and a rotary plate 21 is fixed to the output shaft 20. An outer circumferential end portion of the rotary plate 21 and the ring member 19 are connected by means of gears, and the rotary plate 21 and the ring member 19 integrally rotate. A slide bearing 34 is fixed to an outer circumference of the output shaft 20. The slide bearing 34 penetrates through a through-hole 37 formed at the center portion of the housing 9, and rotatably contacts with the housing 9 through a cylindrical sliding surface 34a.
Each baffle unit 5 is disposed between the two planet gears 3 and 3 adjacent to each other in the circumferential direction in
As shown in
The end wall 30 is disk-shaped, and is an end wall shared by the three baffle units 5. The end wall 30 may be provided for each baffle unit 5, and a support wall for supporting the end portion of the planet shaft 12 may be provided separately from the end wall 30. The shape of the radially outer end wall 33 as viewed in the axial direction, is not limited to an arc shape, and may be a linear shape.
The end wall 30 that is disposed on the one end side, in the axial direction, of the radially outer end wall 33, that is, on the output shaft 20 side thereof in
The other end portion of the radially outer end wall 33 shown in
The end portions, that is, the radially inner ends, of the guide portions 27A, 27B which form the first introduction opening portion 25, are disposed in the vicinity of an arrangement pitch circle 60 formed by the center of each planet gear 3 being connected. In the embodiment shown in
The end wall 30 that forms a part of the baffle unit 5 shown in
As shown in
A plurality of nozzles 32 for injecting the lubricating oil OL toward the tooth surface 2a of the sun gear 2 are formed in the vicinity of and below the through-hole 40 of the housing 9. The housing 9 has a first supply passage 35A for supplying the lubricating oil OL to the nozzles 32, and a second supply passage 35B for supplying the lubricating oil OL to an intra-baffle passage 36 formed in each baffle unit 9.
A nozzle 32A may be formed so as to be open at the tooth bottom of the sun gear 2 as indicated by a dashed line in
In the housing 9, a third supply passage 35C for supplying the lubricating oil OL to the slide bearing 16a of the input shaft 6 is formed. To the third supply passage 35C, the lubricating oil OL is supplied from a not-illustrated external lubricating oil supply. The lubricating oil OL flows through the hollow portion of the planet shaft 12 from the second supply passage 35B, and is supplied through a supply hole 64 to the bearing 13.
The lubricating oil OL collected in each baffle unit 5 is discharged into the housing 9 through the discharge opening portion 26, a discharge passage 22, and the outlet hole 23. The lubricating oil OL stored in the bottom portion of the housing 9 is discharged through a discharge passage (not shown) to the outside of the planetary gear device 1.
An operation of the planetary gear device 1 having the structure for distributing the lubricating oil according to the above-described embodiment will be described. The lubricating oil OL is injected from the nozzles 32 shown in
As shown in
The lubricating oil OL will flow along the tooth surface 4a of the ring gear 4 as indicated by an arrow P3 after a portion at which the planet gear 3 and the ring gear 4 mesh with each other is lubricated. By the radially outer end wall 33, of the baffle unit 5, disposed in the vicinity of the ring gear 4, most of the lubricating oil OL is prevented from moving along the tooth surface 4a of the ring gear 4. Therefore, stirring resistance due to the ring gear 4 is reduced.
The supply opening 32 through which the lubricating oil OL is supplied to the tooth surface of the sun gear 2 is provided not in the baffle unit 5 as disclosed in Patent Document 1, but in the housing 9. Therefore, the internal space of the baffle unit 5 can be effectively used for collecting the lubricating oil OL. The circumferential width W of the first introduction opening portion 25 is greater than the minimum gap G between the two planet gears 3 and 3 adjacent to each other. Thus, the lubricating oil OL that flows between the planet gears 3 and 3 in the radially outward direction can be effectively introduced through the first introduction opening portion 25 into the baffle unit 5.
The first introduction opening portion 25 is disposed in the vicinity of the arrangement pitch circle 60 of the planet gears 3. A portion in the vicinity of the arrangement pitch circle 60 is greater than the minimum gap G between the planet gears 3 and 3, and is not distant from the sun gear. Therefore, after the sun gear is lubricated, the lubricating oil can be effectively introduced into the baffle unit through the first introduction opening portion disposed in the vicinity thereof.
The discharge opening portion 26 is formed in the end wall 30 shown in
Since the outlet hole 23 is formed in the ring member 19 shown in
In the housing 9, the nozzles 32 for injecting the lubricating oil toward the tooth surface of the sun gear 2, and the third supply passage 35C for supplying the lubricating oil OL to the bearing of each planet gear 3, are formed. The housing 9 does not rotate and is stationary, so that the lubricating oil OL is constantly and stably injected to the tooth surface of the sun gear 2 from the nozzles 32 provided in the housing 9. Similarly, the lubricating oil OL is constantly and stably supplied to the bearing 13 of each planet gear 3 by the third supply passage 35C provided in the housing 9.
In the first embodiment, a baffle unit 5A shown in
In the first embodiment, a baffle unit 5B shown in
Next, a result of an analysis of stirring loss of the planetary gear devices using the above-described three types of the baffle units 5, 5A, 5B and a baffle unit 50 as shown in
As shown in
The end wall 30 of the baffle unit 5 has the support portion 28, and thus has an increased dimension in the radial direction. Therefore, the discharge opening portion 26 formed in the end wall 30 can be increased to easily discharge the lubricating oil. The baffle unit 5 is stably supported by the housing 9 through the fastening member 24 at the other end portion of the radially outer end wall 33.
Since the outlet hole 23 is formed in the ring member 19, the lubricating oil OL discharged through the discharge opening portion 26 of each baffle unit 5, is guided into the housing 9 from the outlet hole 23 of the ring member 29, and the lubricating oil OL is not accumulated at the ring member 19. Therefore, stirring resistance of the lubricating oil OL caused by the rotation of the ring member 19 can be reduced.
In the housing 9, the nozzles 32 for injecting the lubricating oil OL toward the tooth surface 3a of the sun gear 3; and the supply passage 35A for supplying the lubricating oil OL to the bearing 13 of each planet gear 3, are formed. Therefore, the lubricating oil OL can be stably injected, from the nozzles 32 provided in the housing 9 which does not rotate and is stationary, toward the tooth surface 2a of the sun gear 2, and the lubricating oil OL can be stably supplied also from the supply passage 35A to the bearing 13 of each planet gear 3. Further, the lubricating oil OL can be stably supplied to the slide bearing 39 of the support portion 28, through the discharge groove 36 in the baffle unit 5 in a stationary state, from the supply passage 35C formed in the housing 9.
Although the present invention has been fully described in connection with the preferred embodiments thereof with reference to the accompanying drawings, numerous additions, changes, and deletions can be made without departing from the gist of the present invention. For example, the discharge opening portions 26 may be formed in both of the two walls 30 and 31 of the baffle unit 5. Therefore, these are construed as included within the scope of the present invention.
Yamashita, Seiji, Noguchi, Yoshiyuki, Arisawa, Hidenori, Yamasaki, Yoshihiro, Obayashi, Katsuyoshi
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Feb 16 2016 | ARISAWA, HIDENORI | Kawasaki Jukogyo Kabushiki Kaisha | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 038161 | /0639 | |
Feb 16 2016 | YAMASHITA, SEIJI | Kawasaki Jukogyo Kabushiki Kaisha | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 038161 | /0639 | |
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